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Red Supergiant problem viewed from the nebular phase spectroscopy of type II supernovae

High Energy Astrophysical Phenomena 2025-04-22 v1

Abstract

The red supergiant (RSG) problem refers to the observed dearth of luminous RSGs identified as progenitors of Type II supernovae (SNe II) in pre-SN imaging. Understanding this phenomenon is essential for studying pre-SN mass loss and the explodability of core-collapse SNe. In this work, we re-assess the RSG problem using late-phase spectroscopy of a sample of 50 SNe II. The [O I] λλ\lambda\lambda6300,6363 emission in the spectra is employed to infer the zero-age main sequence (ZAMS) mass distribution of the progenitors, which is then transformed into a luminosity distribution via an observation-calibrated mass-luminosity relation. The resulting luminosity distribution reveals an upper cutoff at log L/L=5.210.07+0.09L/L_{\odot} = 5.21^{+0.09}_{-0.07} dex, and the RSG problem is statistically significant at the 2σ\sigma to 3σ\sigma level. Assuming single RSG progenitors that follow the mass-luminosity relation of KEPLER models, this luminosity cutoff corresponds to an upper ZAMS mass limit of 20.631.64+2.4220.63^{+2.42}_{-1.64} MM_{\odot}. Comparisons with independent measurements, including pre-SN imaging and plateau-phase light curve modeling, consistently yield an upper ZAMS mass limit below about 25 MM_{\odot}, with a significance level of 1-3σ\sigma. While each individual method provides only marginal significance, the consistency across multiple methodologies suggests that the lack of luminous RSG progenitors may reflect a genuine physical problem. Finally, we discuss several scenarios to account for this issue should it be confirmed as a true manifestation of stellar physics.

Keywords

Cite

@article{arxiv.2504.14502,
  title  = {Red Supergiant problem viewed from the nebular phase spectroscopy of type II supernovae},
  author = {Qiliang Fang and Takashi J. Moriya and Keiichi Maeda},
  journal= {arXiv preprint arXiv:2504.14502},
  year   = {2025}
}

Comments

24 pages, 15 figures. Accepted by ApJ